Customization:
With Xilinx 7-series FPGA technology, achieve high-density logic integration in a compact 676-FCBGA (27x27) package*.
With a dual-core ARM Cortex-A9 processor, deploy real-time software applications alongside customizable hardware logic*.
With 125K logic units operating at 800MHz, process complex tasks up to 20% faster than non-integrated FPGA solutions*.
With integrated processing and programmable logic, streamline designs for real-time control, data acquisition, and communication systems*.
Compliant with industry standards for high-reliability applications, ensuring robustness in industrial and commercial environments*.
The Xilinx Zynq XC7Z030-2FFG676I is a high-performance embedded System on Chip (SoC) integrating a dual-core ARM Cortex-A9 processor with 125K logic units on a 27x27mm 676-FCBGA package. This FPGA combines real-time processing capabilities with flexible programmable logic, enabling versatile applications in embedded systems, industrial automation, and communication infrastructure.
Feature | Specification | Benefit |
---|---|---|
Processing System (PS) | Dual-core ARM Cortex-A9 @ 800MHz | High-performance computing for complex tasks |
Programmable Logic (PL) | 125K logic cells, 676-FCBGA package | Customizable hardware acceleration |
Integration | ARM CPU + FPGA in a single package | Simplified design and reduced component count |
Frequency | Up to 800MHz | Enhanced real-time processing speed |
Application | Industrial control, signal processing | Versatile for embedded and IoT systems |
Adjust the programmable logic resources (e.g., logic cells, I/O pins) or processor configurations to meet specific requirements for bandwidth, latency, or power efficiency.
With the XC7Z030’s integrated CPU-FPGA architecture, you can design compact, high-performance systems for applications like real-time data acquisition, robotics control, or custom hardware accelerators—all in a single chip.
Parameter | Base Model | Advanced Model | Pro Model |
---|---|---|---|
Logic Cells | 125K | +20% (150K) | +40% (175K)* |
Clock Speed | 800MHz | 850MHz | 900MHz |
Memory | 28MB BRAM | 36MB BRAM | 48MB BRAM |
I/O Pins | 676 | 676 (reconfigurable) | 676 (high-speed) |
Technical Breakthroughs:
Version Selection Guide:
*Pro Model’s logic cell count exceeds industry benchmarks by 25%, enabling denser FPGA designs.
Category | Usage Scenarios | Characteristics | Advantages | Disadvantages |
---|---|---|---|---|
Processing System (PS) | Real-time control systems, embedded apps | Dual-core ARM Cortex-A9 @ 667MHz (PS performance) ▲ (Supports real-time OS) | High computational power for complex algorithms | Higher power consumption vs base-tier FPGAs |
Programmable Logic (PL) | Custom hardware acceleration, prototyping | 125K Logic Cells @ 800MHz (PL performance) ▲▲ (Supports 28nm process node) | Flexible hardware customization for specialized tasks | Steeper learning curve for FPGA programming |
Integration | System-on-Chip (SoC) designs | Unified PS+PL architecture ▲ (Reduces PCB component count by ~40%) | Simplified system design and reduced latency between CPU/FPGA | Higher BOM cost compared to standalone FPGA/CPU solutions |
Thermal Performance | High-throughput industrial systems | 0.5W/Watt thermal design power ▲ (Passes MIL-STD-810G environmental tests) | Stable operation under continuous heavy workloads | Requires active cooling in compact enclosures |
I/O Density | High-pin-count interfaces | 676 FCBGA package ▲▲ (27x27mm footprint with 0.8mm pitch) | Supports 500+ differential pairs for high-speed interfaces | Complex PCB routing requirements and higher assembly costs |
Security Features | Mission-critical applications | AES-256 encryption, secure boot ▲ (Complies with NIST SP 800-90A standards) | Tamper-resistant design for data-sensitive systems | Adds 15-20% latency overhead in security-critical paths |
⭐⭐⭐⭐⭐ Alex Turner - Industrial Control Systems Engineer
"The XC7Z030 has transformed our automation platform. Integrating the ARM Cortex-A9 with FPGA logic in one chip reduced our board complexity by nearly half. We’re running real-time motor control algorithms with sub-millisecond latency, and the 125K logic cells gave us room to implement custom PWM modulators directly in hardware. Exactly what we needed for scalable, high-reliability deployments."Purchase Date: May 2024 | Usage Period: 8 months
⭐⭐⭐⭐⭐ Dr. Elena Park - Embedded Systems Researcher
"We selected the Base Model of the XC7Z030 for our real-time signal processing lab. The dual-core ARM handles Linux-based data logging while the FPGA manages high-speed ADC interfacing—no bottlenecks. Vivado integration was smooth, and students picked it up faster than expected. Perfect balance of performance and flexibility for academic prototyping."Purchase Date: February 2025 | Usage Period: 4 months
⭐⭐⭐⭐⭐ Marcus Reed - Avionics Systems Developer
"Deployed the Pro Model in a drone telemetry system requiring on-the-fly encryption and sensor fusion. The 175K logic cells allowed us to build a custom AES-256 accelerator and GPS/IMU fusion block directly on PL, while the ARM runs the flight stack. Passed MIL-STD-810G thermal and vibration tests with flying colors. This isn’t just an FPGA—it’s a mission-critical compute engine."Purchase Date: November 2024 | Usage Period: 6 months
⭐⭐⭐⭐☆ Jessica Lin - Hardware Startup Founder
"Used the Advanced Model for our smart factory gateway prototype. The reconfigurable I/O was key for adapting to legacy industrial protocols (Modbus, CAN), and the extra BRAM helped buffer sensor data before cloud upload. Only downside: the learning curve for timing constraints in Vivado took about two weeks. But once we got past that, development accelerated fast."Purchase Date: January 2025 | Usage Period: 5 months
⭐⭐⭐⭐⭐ Daniel Kim - DIY Robotics Enthusiast
"Built a vision-guided robot arm using the XC7Z030-2FFG676I dev board. Running OpenCV on the ARM while offloading image thresholding and servo control to the FPGA gave me real-time responsiveness I couldn’t achieve with a Raspberry Pi. The 676-pin package was tight for hand-soldering, but the performance payoff is massive. For hobbyists ready to level up—this chip delivers."Purchase Date: September 2024 | Usage Period: 9 months
Average Rating: 4.8/5 ⭐ (89 Reviews)
Dr. Rajiv Mehta - Senior FPGA Architect, 15+ years in Embedded Systems
"The XC7Z030 stands out in the SoC FPGA space due to its balanced PS/PL performance. Unlike pure microcontrollers or standalone FPGAs, it enables true hardware-software co-design. For applications needing deterministic control and parallel processing—like industrial PLCs or test equipment—I consistently recommend this model over alternatives."
Lena Fischer - Edge Computing Specialist, IoT Solutions Group
"In edge AI prototyping, time-to-market is critical. The XC7Z030’s reconfigurable fabric allows developers to prototype custom inference accelerators without ASIC costs. Combined with ARM’s rich software ecosystem, it’s an ideal bridge between concept and production—especially for startups avoiding NRE-heavy ASIC development."
Posted: 2 days ago
"Integrated this into a CNC retrofit project. The FPGA handles encoder interpolation and trajectory planning with zero jitter. ARM runs the UI and network stack. Design integration was seamless thanks to Xilinx’s reference designs."
Posted: 1 week ago
"Replaced a dual-board ARM+FPGA setup with a single XC7Z030. Reduced footprint by 40%, cut inter-chip latency, and improved thermal stability. Worth every penny for high-speed DAQ systems."
Posted: 3 weeks ago
"Running full load in an enclosed cabinet caused thermal throttling. Added a small fan—problem solved. Otherwise, performance is outstanding. Just plan your thermal design early."
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